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Dynamics of cryogen deposition relative to heat extraction rate during cryogen spray cooling

机译:制冷剂喷雾冷却过程中制冷剂沉积相对于热量提取速率的动力学

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Abstract: Goal is to investigate how delivery nozzle design influences the cooling rate of cryogen spray as used in skin laser treatments. Cryogen was sprayed through nozzles that consist of metal tubes with either a narrow or wide diameter and two different lengths. Fast-flashlamp photography showed that the wide nozzles, in particular the long wide one, produced a cryogen jet (very small spray cone angle) rather than a spray (cone angles of about 15 degrees or higher) and appeared to atomize the cryogen less finely than the narrow nozzles. We measured the cooling rate by spraying some cryogen on an epoxy-block with thermocouples embedded. The heat extraction rate of the wide nozzles was higher than that of the narrow nozzles. The results suggest that finely atomized droplets produced by the narrow nozzles do not have enough kinetic energy to break through a layer of liquid cryogen accumulated on the object, which may act as a thermal barrier and, thus, slow down heat extraction. Presumably, larger droplets or non- broken jets ensure a more violent impact on this layer and therefore ensure an enhanced thermal contact. The margin of error for the heat extraction estimate is analyzed when using the epoxy-block. We introduce a complementary method for estimating heat extraction rate of cryogen sprays. !15
机译:摘要:目的是研究输送喷嘴设计如何影响皮肤激光治疗中使用的冷冻剂喷雾的冷却速率。通过由直径狭窄或较宽且两种不同长度的金属管组成的喷嘴喷雾冷冻剂。快速闪光灯摄影显示,较宽的喷嘴,尤其是较宽的喷嘴,产生的是冷冻剂射流(非常小的喷雾锥角),而不是喷雾(圆锥角大约为15度或更高),并且雾化冷冻剂的可能性降低了比狭窄的喷嘴。我们通过在嵌入了热电偶的环氧树脂块上喷一些制冷剂来测量冷却速率。宽喷嘴的吸热率高于窄喷嘴。结果表明,由窄喷嘴产生的细雾化液滴没有足够的动能来突破堆积在物体上的液态制冷剂层,这可能会起到热障的作用,从而减慢热量的提取。据推测,较大的液滴或不破裂的喷射流可确保对该层的冲击更大,从而确保增强的热接触。使用环氧树脂块时,将分析热量提取估计的误差范围。我们介绍了一种补充方法,用于估算制冷剂喷雾的热提取率。 !15

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